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D-丝氨酸对N-甲基-D-天冬氨酸受体的调节:新发现与展望

NMDA receptor regulation by D-serine: new findings and perspectives.

作者信息

Wolosker Herman

机构信息

Department of Biochemistry, B. Rappaport Faculty of Medicine, Technion-Israel Institute of Technology, Haifa, 31096, Israel.

出版信息

Mol Neurobiol. 2007 Oct;36(2):152-64. doi: 10.1007/s12035-007-0038-6. Epub 2007 Sep 12.

Abstract

The N-methyl-D-aspartate (NMDA) receptors play key roles in excitatory neurotransmission and are involved in several important processes, including learning, behavior, and synaptic plasticity. The regulation of NMDA receptor neurotransmission has been extensively studied, but many important questions still remain unsolved. One of the most debated aspects of the NMDA receptor regulation relates to the identity, role, and cellular origin of the NMDA coagonist(s). In addition to glutamate, the NMDA receptor activity was believed to be regulated by the coagonist glycine. More recently, D-serine has also been proposed to play a role as a key coagonist for NMDA receptor activity and neurotoxicity. A surprising unique biosynthetic pathway for D-serine has been demonstrated, indicating the conservation of D-amino acid metabolism in mammals. D-Serine was originally shown to be exclusively made in astrocytes, indicating a possible role as a gliotransmitter. Nevertheless, recent data indicate that D-serine has a neuronal origin as well, which raises several new questions on D-serine disposition. In this review, I discuss recent advances in the field and propose a novel model of D-serine signaling that includes a bidirectional flow of D-serine between astrocytes and neurons.

摘要

N-甲基-D-天冬氨酸(NMDA)受体在兴奋性神经传递中起关键作用,并参与包括学习、行为和突触可塑性在内的多个重要过程。NMDA受体神经传递的调节已得到广泛研究,但许多重要问题仍未解决。NMDA受体调节中最具争议的方面之一涉及NMDA共激动剂的身份、作用和细胞来源。除了谷氨酸外,人们认为NMDA受体活性还受共激动剂甘氨酸的调节。最近,D-丝氨酸也被认为是NMDA受体活性和神经毒性的关键共激动剂。已证明D-丝氨酸有一条惊人的独特生物合成途径,这表明哺乳动物中D-氨基酸代谢的保守性。D-丝氨酸最初被证明仅在星形胶质细胞中产生,这表明它可能作为一种胶质递质发挥作用。然而,最近的数据表明D-丝氨酸也有神经元来源,这就引发了关于D-丝氨酸处置的几个新问题。在这篇综述中,我讨论了该领域的最新进展,并提出了一种新的D-丝氨酸信号传导模型,该模型包括D-丝氨酸在星形胶质细胞和神经元之间的双向流动。

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